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1.
Photodissociation of (CH3)2N-NO following S1(nπ*) ← S0 excitation yields (CH3)2N? and NO with a quantum yield of 1.03 ± 0.10. These fragments recombine leaving no stable photopioducts. A fraction of NO produced by photolysis is vibrationally excited. The rate of the NO(v = 1) relaxation in collision with (CH3)2N-NO, measured by IR fluorescence, is (1.47 ± 0.03) × 104 s?1 Torr?1.  相似文献   

2.
The diamagnetic Roussin esters Fe2(SR)2(NO)4 readily underwent exchange with thiols R′SH to yield Fe2(SR′)2(NO)4: the exchange was faster in polar, coordinating solvents where paramagnetic, mononuclear complexes of types [Fe(NO)2(solvent)2]+ and Fe(NO) 2(SR)(solvent) were formed. With the corresponding thiolate anions RS-, the esters Fe2(SR)2(NO)4 formed the mononuclear complexes [Fe(SR)2(NO)2]-, which were fully characterised by EPR spectroscopy for R = H, Me, Et, i-Pr, t-Bu and PhCH2: assignments of hyperfine couplings were confirmed by use of 15N. With Fe2(SR)2(NO)4 and a different set of thiolate anion, R′S -, in excess, thiol exchange occurred to give [Fe(SR′)2(NO)2]-. A mechanism for formation of Fe2(SR′)2(NO)4 from Fe2(SR)2(NO)4 has been proposed. The paramagnetic mononuclear complexes [Fe(SR)2(NO)2] were also readily formed from the diamagnetic clusters [Fe4S3(NO)7]- and Fe4S4(NO)4, together with [Fe(SR)3(NO)]-, and additionally from [Fe(CO)3NO]-. [Fe(SMe)2(NO)2]-. was found to be a precursor of isolable Fe2(SMe)2(NO)4, and [Fe(SH)2 (NO)2]- to be the common precursor of both Roussin′s red anion [Fe2S2(NO)4]- and Roussin's black anion [Fe4S3 (NO)7]- interconvertible by appropriate adjustment of pH. The nitrosyl groups in these complexes were freely labile, and mononitrosyliron and dinitrosyliron fragments were readily interconvertible: FE(NO) fragments were favoured by the dimethyldithiocarbamate ligand (Me2NCS 2) and Fe(NO)2 fragments by thiolate ligands, RS-, regardless of the origin of the Fe(NO)x(x = 1,2) fragment: both mono- and dinitrosyliron complexes persisted with [(i-PrO)2S2]- as ligand. Isotopic labelling showed the occurrence of rapid exchange of nitrogen between nitrosyl ligands and added nitrite in Fe(NO)(S2CNMe2)2 and [Fe(SR)2(NO)2]-  相似文献   

3.
S‐Nitrosation of the coordinated thiolate of dinitrosyl iron complexes (DNICs) to generate S‐nitrosothiols (RSNOs) was demonstrated. Transformation of [{(NO)2Fe(μ‐StBu)}2] ( 1‐tBuS ) into the {Fe(NO)2}9 DNIC [(NO)2Fe(StBu)(MeIm)] ( 2‐MeIm ) occurs under addition of 20 equiv of 1‐methylimidazole (MeIm) into a solution of 1‐tBuS in THF. The dynamic interconversion between {Fe(NO)2}9 [(NO)2Fe(S‐NAP)(dmso)] ( 2‐dmso ) (NAP=N‐acetyl‐D ‐penicillamine) and [{(NO)2Fe(μ‐S‐NAP)}2] ( 1‐NAP ) was also observed in a solution of complex 1‐NAP in DMSO. In contrast to the reaction of complex 2‐MeIm and bis(dimethylthiocarbamoyl) disulfide ((DTC)2) to yield {Fe(NO)}7 [(NO)Fe(DTC)2] ( 3 ) (DTC=S2CNMe2) accompanied by (tBuS)2 and NO(g), transformation of {Fe(NO)2}9 2‐MeIm ( 2‐dmso ) into RSNOs (RS=tBuS, NAP‐S) along with complex 3 induced by the Brønsted acid solution of (DTC)2 demonstrated that Brønsted acid may play a critical role in triggering S‐nitrosation of the coordinated thiolate of DNICs 2‐MeIm (or 2‐dmso ) to produce RSNOs. That is, DNIC‐mediated S‐nitrosation requires a Brønsted acid–Lewis base pair to produce RSNO. Transformation of DNICs into RSNOs may only occur on the one‐thiolate‐containing {Fe(NO)2}9 DNICs, in contrast to protonation of the two‐thiolate‐containing DNICs [(NO)2Fe(SR)2]? by Brønsted acid to yield [{(NO)2Fe(μ‐SR)}2]. These results might rationalize that the known protein‐Cys‐SNO sites derived from DNICs were located adjacent to acid and base motifs, and no protein‐bound SNO characterized to date has been directly derived from [protein–(cysteine)2Fe(NO)2] in biology.  相似文献   

4.
The trans-[Fe(cyclam)(NO)Cl]Cl2 complex was synthesized by the reaction of cis-[Fe(cyclam)Cl2]Cl with NO gas. The X-ray structure of the complex showed that the [Fe–NO] moiety is linear, consistent with the NO+ character of the nitric oxide ligand. This suggestion was reinforced by the IR data, which showed the νNO at 1888 cm−1. The cyclic voltammogram of the trans-[Fe(cyclam)(NO)Cl]2+ complex presented three electrochemical processes at −0.70, 0.08 and 0.40 V versus Ag/AgCl. The first and last redox processes are centered at the NO ligand, whereas the second is characteristic of the generated aqua species, trans-[Fe(cyclam)Cl(H2O)]2+. Upon irradiation at 330 nm, pH 3.4, the title complex releases the NO moiety with the concomitant generation of the trans-[Fe(cyclam)(H2O)Cl]+ complex as suggested by electronic and IR spectroscopy as well as by cyclic voltammetry technique.  相似文献   

5.
The electronic structures and spectroscopic properties of a series of mixed bis-cyclometalated iridium(III) complexes [Ir(ppy)2X2] (X = CN, 1; X = NCS, 2; X = NCO, 3; ppy = 2-phenylpyridl) were investigated at the B3LYP/LANL2DZ and CIS/LANL2DZ levels. The calculated geometry parameters in the ground state are well consistent with the corresponding experimental values. The HOMO of 1 is dominantly localized on Ir atom and ppy ligand, but the HOMO of 2 and 3 have significant X ligand composition. Under the TD-DFT level with PCM model, the absorption and phosphorescence in CH2Cl2 media were calculated based on the optimized geometries in the ground and excited states, respectively. The lowest-lying absorption of 1 at 403 nm is attributed to {[dx2-y2(Ir)+dxy(Ir)+π(ppy)]→[π(ppy)]} transition with metal-to-ligand and intraligand charge transfer (MLCT/ILCT) transition characters, whereas those of 2 (449 nm) and 3 (475 nm) are related to {[dx2-y2(Ir)+dxy(Ir)+π(ppy)+π(NCS/NCO)]→[π(ppy)]} transition with MLCT/ILCT and ligand-to-ligand charge transfer (LLCT) transition characters. The phosphorescence of 1 at 466 nm can be described as originating from 3{[dx2-y2(Ir)+dxy(Ir)+π(ppy)][π(ppy)]} excited state, while those of 2 (487 nm) and 3 (516 nm) originate from 3{[dx2-y2(Ir)+dxy(Ir)+π(ppy)+π(NCS/NCO)][π(ppy)]} excited states. The calculated results showed that the transition character of the absorption and emission can be changed by adjusting the π electron-accepting abilities of the X ligands and the phosphorescent color can be tuned by altering the X ligands.  相似文献   

6.
Density functional calculations with the B3LYP functional were carried out for the [Ru(NO)Cl5]2−, [Ru(NO)(NH3)5]3+, [Ru(NO)(CN)5]2−, [Ru(NO)(CN)5]3−, [Ru(NO)(hedta)]q (hedta = N-(hydroxyethyl)ethylenediaminetriacetate triple-charged anion; q = 0, −1, −2), Rh2(O2CR)4, Rh2(O2CR)4(NO)2, Ru2(O2CR)4, Ru2(O2CR)4(NO)2, Ru2(dpf)4, and Ru2(dpf)4(NO)2 (dpf = N,N′-diphenylformamidinate ion; R = H, CH3, CF3) complexes. The electronic structure was analyzed in terms of Mayer and Wiberg bond order indices. The technique of bond order indices decomposition into σ-, π-, and δ-contributions was proposed.  相似文献   

7.
Release of the distinct NO redox‐interrelated forms (NO+, .NO, and HNO/NO?), derived from reaction of the dinitrosyl iron complex (DNIC) [(NO)2Fe(C12H8N)2]? ( 1 ) (C12H8N=carbazolate) and the substitution ligands (S2CNMe2)2, [SC6H4o‐NHC(O)(C5H4N)]2 ((PyPepS)2), and P(C6H3‐3‐SiMe3‐2‐SH)3 ([P(SH)3]), respectively, was demonstrated. In contrast to the reaction of (PyPepS)2 and DNIC 1 in a 1:1 stoichiometry that induces the release of an NO radical and the formation of complex [PPN][Fe(PyPepS)2] ( 4 ), the incoming substitution ligand (S2CNMe2)2 triggered the transformation of DNIC 1 into complex [(NO)Fe(S2CNMe2)2] ( 2 ) along with N‐nitrosocarbazole ( 3 ). The subsequent nitrosation of N‐acetylpenicillamine (NAP) by N‐nitrosocarbazole ( 3 ) to produce S‐nitroso‐N‐acetylpenicillamine (SNAP) may signify the possible formation pathway of S‐nitrosothiols from DNICs by means of transnitrosation of N‐nitrosamines. Protonation of DNIC 1 by [P(SH)3] triggers the release of HNO and the generation of complex [PPN][Fe(NO)P(C6H3‐3‐SiMe3‐2‐S)3] ( 5 ). In a similar fashion, the nucleophilic attack of the chelating ligand P(C6H3‐3‐SiMe3‐2‐SNa)3 ([P(SNa)3]) on DNIC 1 resulted in the direct release of [NO]? captured by [(15NO)Fe(SPh)3]?, thus leading to [(15NO)(14NO)Fe(SPh)2]?. These results illustrate one aspect of how the incoming substitution ligands ((S2CNMe2)2 vs. (PyPepS)2 vs. [P(SH)3]/[P(SNa)3]) in cooperation with the carbazolate‐coordinated ligands of DNIC 1 function to control the release of NO+, .NO, or [NO]? from DNIC 1 upon reaction of complex 1 and the substitution ligands. Also, these results signify that DNICs may act as an intermediary of NO in the redox signaling processes by providing the distinct redox‐interrelated forms of NO to interact with different NO‐responsive targets in biological systems.  相似文献   

8.
Complete self-recognition of chirality is observed in the Michael addition of the enolate derived from R,S-[η5-C5H5Fe(CO)(PPh3-COCH3] to the acryloyl complex R,S-[(η5-C5H5Fe(CO)(PPh3)-COCHCH2)] to generate exclusively the single diastereoisomer of the glutaroyl complex RR,SS-[(η5-C5H5)Fe(CO)(PPh3)COCH2]2CH2.  相似文献   

9.
The reaction of α-benzoinoxime, H2BNO with FeCl3 in the presence of Et3N as a base gives the mononuclear Fe(III) complex, Fe(HBNO)3 (1). Treatment of 1 with a methanolic solution of KOH at room temperature leads to a dinuclear Fe(III)–Fe(III) complex, [Fe(HBNO)2OH]2 (2). The complexes were initially characterized on the basis of their elemental, mass and thermal analyses. The IR studies were useful in assigning the coordination mode of the benzoinoxime ligand to the iron metal. In addition, the presence of a hydroxo-bridge in the dimeric complex 2 is inferred from the IR spectral studies. Room-temperature Mössbauer studies indicated octahedral, high-spin iron(III). Variable-temperature magnetic susceptibility measurements supported the existence of the μ-dihydroxo-bridging structure core, FeIII(μ-OH)2FeIII in the dinuclear complex 2. Theoretical modelling of the magnetic data indicated a weak antiferromagnetic spin exchange between the iron(III) centers (J = −8.35 cm−1, g = 2.01, ρ = 0.02 and TIP = 1.7 × 10−4 cm3 mol−1 for H = −2JS1 · S2). The electronic spectra of the complexes revealed two bands due to d–d transitions and one band assignable to an oxygen (pπ) → Fe(dπ∗) LMCT transition observed in each complex. An additional charge-transfer transition, assignable to μ-hydroxo(pπ) → Fe(dπ∗), was observed for the dimeric complex 2. The structural and vibrational behaviors of these complexes have been elucidated with quantum mechanical methods.  相似文献   

10.
The mononuclear high-spin iron(III) complexes [Fe(3-MeOsalpn)Cl(H2O)] (1) and [Fe(3-MeOsalpn)(NCS)(H2O)]·0.5CH3CN (2) and the tetranuclear oxo-bridged compound [{Fe(3-MeOsalpn)Gd(NO3)3}2(μ-O)]·CH3CN (3) [3-MeOsalpn2− = N,N′-propylenebis(3-methoxysalicylideneiminate)] have been prepared and magneto-structurally characterised. The iron(III) ion in 1 and 2 is six-coordinated in a somewhat distorted octahedral surrounding with the two phenolate-oxygens and two imine-nitrogens from the Schiff-base building the equatorial plane and a water (1 and 2) and a chloro (1)/thiocyanate-nitrogen (2) in the axial positions. The neutral mononuclear units of 1 and 2 are assembled into centrosymmetric dinuclear motifs through hydrogen bonds between the axially coordinated water molecule of one iron centre and methoxy-oxygen atoms from the Schiff-base of the adjacent iron atom. The values of the intradimer metal-metal distance within the supramolecular dimers are 4.930 (1) and 4.878 Å (2). The tetranuclear of 3 can be described as two {FeIII(3-MeOsalpn)} units connected through an oxo-bridge, each one hosting a [GdIII(NO3)3] entity in the outer cavity defined by the two phenolate- and two methoxy-oxygen atoms. The values of the intramolecular Fe?Fe and Fe?Gd distances in 3 are 3.502 and 3.606 Å, respectively. The analysis of the magnetic data of 1-3 in the temperature range 1.9-300 K shows the occurrence of weak intermolecular antiferromagnetic interactions in 1 and 2 [J = −0.76 (1) and −0.75 cm−1 (2) with the Hamiltonian defined as H = −JSFe1·SFe1] whereas two intramolecular antiferromagnetic interactions coexist in 3, one very strong between the two iron(III) ions (J1) through the oxo bridge and the other much weaker between the iron(III) and the Gd(III) ions (J2) across the double phenoxo oxygens [J1 = −275 cm−1 and J2 = −3.25 cm−1, the Hamiltonian being defined as H=-J1SFe1·SFe1-J2(SFe1·SGd1+SFe1·SGd1)]. These values are analysed in the light of the structural data and compared with those of related systems.  相似文献   

11.
李丹  薛佳丹  郑旭明 《物理化学学报》2015,30(12):2216-2223
通过共振拉曼光谱实验和量子化学计算的方法研究了4-硝基咪唑(4NI)A-带激发态衰变动力学. 对4NI的振动光谱、紫外电子吸收光谱、荧光光谱和共振拉曼光谱进行了指认. 在全活化空间自洽场法(CASSCF)/6-31G(d)计算水平下获得了单重激发态S1(nOπ*)和S2(ππ*)和势能面交叉点S1(nOπ*)/S2(ππ*)的优化几何结构和能量, 分析了A-带共振拉曼光谱的强度模式特征, 获得了短时结构动力学, 并结合全活化空间自洽场法(CASSCF)理论计算结果确定了4NI 在S2(ππ*)态衰变通道主要是S2, FC→S2, min(ππ*)→S0辐射弛豫.  相似文献   

12.
A series of ruthenium (II) complexes, [Ru(bpy)2L]X2 (L = L1, L2; X = Cl, PF6, SCN), were synthesized based on bipyridine and two novel diimine ligands L1 and L2 (L1 = 1-(4-5′-phenyl-1,3,4-oxadiazolylphenyl)-2-pyridinyl-benzoimidazole, L2 = 1-(4-carbazolylphenyl)-2-pyridinylbenzimidazole); and the crystal structure of [Ru(bpy)2L1]Cl2 was also described. [Ru(bpy)2(Pybm)]X2 (Pybm = 2-(2-pyridine)benzimidazole) complexes were also prepared as reference samples. In the UV-vis absorption spectra there are one strong π → π* transition and two dπ (Ru) → π* transitions. By comparisons of photoluminescence properties between [Ru(bpy)2L]X (L = L1, L2) and the reference complexes we find that the complexes with carrier-transporting groups of carbazole and oxadizole have the higher emission intensity and quantum efficiency. One reversible oxidation process in the range 0.80-1.00 V exists in each of the complexes which is assigned to the metal oxidation, [Ru(III)(bpy)2L]2+ + e?[Ru(II)(bpy)2L]+.  相似文献   

13.
An investigation of the MII/X/L [MII = Co, Ni, Cu, Zn; X = Cl, Br, I, NCS, NO3, N3, CH3COO; L = 1-methyl-4,5-diphenylimidazole] general reaction system towards the detailed study of the intermolecular interactions utilized for controlling the supramolecular organization and the structural consequences on the structures produced has been initiated. Three representative complexes with the formulae [Co(NO3)2(L)2] (1), [Zn(NO3)2(L)2] (2) and [Co(NCS)2(L)2]·EtOH (3·EtOH) have been synthesized and characterized by spectroscopic methods and single-crystal X-ray analysis. Compounds 1 and 2 are isomorphous (tetragonal, I41cd) with their metal ions in a severely distorted octahedral Co/ZnN2O4 environment, while 3·EtOH crystallizes in P21/c with a tetrahedral CoN4 coordination. The structural analysis of 1, 2 and 3·EtOH reveals a common mode of packing among neighbouring ligands (expressed through intramolecular ππ interactions between the 4,5-diphenylimidazole moieties), enhancing thus the rigidity and stability of the complexes. The bent coordination of the two isothiocyanates in 3 [Co–NCS angles of 173.8(2) and 160.8(2)°] seems to be caused by intermolecular hydrogen bonding and crystal packing effects.  相似文献   

14.
The crystal structures of the well-known complexes, [(Me4en)M(II)X2] (Me4en?=?N,N,N??,N??-tetramethylethylenediamine; M(II)?=?Pd(II) or Pt(II); X ??=?NO2 ? or NO3 ?) have been determined. For [(Me4en)Pd(NO2)2] and [(Me4en)Pt(NO2)2], the nitrite anion acts as a monodentate N-donor ligand in the solid state. In contrast, for [(Me4en)Pd(ONO2)(O2NO)], the two nitrate anions act as a monodentate O-donor (ONO2) and a bidentate O,O??-donor (O2NO). Recrystallization of [(Me4en)Pt(NO3)2] from Me2SO yields the Me2SO adduct with a monodentate O-donor nitrate and a counteranionic nitrate, [(Me4en)Pt(ONO2)(S-Me2SO)](NO3). The solution behavior of these complexes, including the equilibrium between coordinated and free Me2SO, has been investigated.  相似文献   

15.
A comparative study of dipyrido-and dibenzo-substituted 1,4-diazines {dipyrido[f,h]quinoxaline (dpq), dipyrido[a,c]phenazine (dppz), 6,7-dicyanodipyrido[f,h]quinoxaline (dicnq), dibenzo[f,h]quinoxaline, dibenzo[a,c]phenazine, 6,7-dicyanodibenzo[f,h]-quinoxaline}, o-phenantroline (phen), and also of the complexes [Pt(N∧C)(N∧N)]+[(N∧C)? are deproronated forms of 2-phenylpyridine and 2-(2-thienyl)pyridine; (N∧N) is ethylenediamine, phen, dpq, dppz, dicnq] was carried out by the methods of 1H NMR, electronic absorption, and emission spectroscopy and by cyclic voltammetry. It was found that in frozen solutions of [Pt(N∧C)·(N∧N)]+ complexes the photoexcitation energy decay from two lowest in energy electronic excited states has isolated character and is localized on {Pt(N∧C)} and {Pt(N∧N)} metal-complex fragments: (d N∧C * ) and (d phen * ) [(N∧N) = phen, dpq, dicnq)] or (d N∧C * ) and (π-π diaz * ) [(N∧N) = dppz]. Thermal quenching of the luminescence from the (d phen * ) and (π-π diaz * ) states gives rise to luminescence of the complexes in liquid solutions at 293 K only from the (d N∧C * ) state.  相似文献   

16.
Five nitrogenous sesquiterpenes having an isonitrile [(−)-axisonitrile-3], a formamide [(+)-axamide-3, axamide-2 and (3S*,5R*,6R*,9R*)-3-formamido-1(10)-cadinene], and an amine [(−)-halichamine] functionality were isolated from the Thai marine sponge Halichondria sp., together with two steroids, ergosterol and ergosterol peroxide. (−)-Axisonitrile-3 was isolated from the natural source for the first time, while (+)-axamide-3 and (−)-halichamine were new metabolites. The structures of these compounds were elucidated on the basis of their spectroscopic data and by chemical transformations. All sesquiterpenes were tested for their cytotoxic activity against six cancer cell lines (HeLa, HuCCA-1, A549, MOLT-3, HepG2, MDA-MB231). Only (−)-axisonitrile-3 showed strong activity to the HepG2 cell line with an IC50 value of 1.3 μM.  相似文献   

17.
The polymer [(C8H12)RuCl2]x, (C8H12  1,5-cyclooctadiene, x > 2), dissolves in refluxing acetonitrile to form [(C8H12)RuCl(CH3CN)3]+ and, on treatment with AgPF6, [(C8H12)Ru(CH3CN)4]2+; some reactions of these cations are described.  相似文献   

18.
The iron-sulfur nitrosyl complexes A[Fe4S3(NO)7], where A=Na+, NH4 +, or N(Bu n )4 +, and B2[Fe2S2(NO)4], where B=Na+, Cs+, or N(Bun)4 +, were synthesized. Their structures and properties were studied by X-ray diffraction analysis, Mössbauer spectroscopy, and cyclic voltammetry. The effect of the crystal packing on the geometry of the tetranuclear NH4[Fe4S3(NO)7]·H2O and binuclear Cs2[Fe2S2(NO)4]·2H2O complexes was analyzed. The changes in the Fe57 Mössbauer spectral parameters of the anion in the B2[Fe2S2(NO)4] series depend on the size of the B cation and agree with variations in the structural parameters of the Fe[S2(NO)2] chromophores as well as in the stretching vibrations of the NO groups caused by changes in intermolecular contacts. The presence of electronic states delocalized through the Fe?Fe bonds explains the fact that the electronic states of the Fea(S3NO) and Feb(S2(NO)2) chromophores in the [Fe4S3(NO)7]? anion are nearly identical. The binuclear clusters are unstable upon storage in the solid phase and decompose in solutions to form the tetranuclear [Fe4S3(NO)7]? complexes, sulfur, and nitrogen oxides. The redox properties of the [Fe4S3(NO)7]? and [Fe2S2(NO4)]2? anions in CH3CN and THF solutions were studied. The mechanism of reduction of the anion in the tetranuclear cluster is proposed.  相似文献   

19.
The new sodium bis(1-methyl-1H-imidazol-2-ylthio)acetate, Na[(S-tim)2CHCO2], has been prepared in ethanol solution using 2-mercapto-1-methylimidazole, dibromoacetic acid and NaOH. New di- and tri-organotin(IV) derivatives have been synthesized from reaction between SnRnCl4−n (R = Ph, Cy and nBu, n = 2-3) acceptors and Na[(S-tim)2CHCO2]. Complexes of the type {[κ1O-(S-tim)2CHCO2]SnR3} and related decarboxylated species {[κ2N,N-(S-tim)2CH2]SnR2Cl2} have been obtained and characterized by elemental analyses, FT-IR, ESIMS and multinuclear (1H, 13C and 119Sn) NMR spectral data. The adduct {κ1O-[(S-tim)2CHCO2]Sn(H2O)(C4H9)3} was characterized by single crystal X-ray studies. The dichloromethane reaction solution of {κ1O-[(S-tim)2CHCO2]Sn(C6H5)3} was re-crystallized and the decarboxylated species {[(S-tim)2CH2]SnCl(H2O)(C6H5)3} was obtained as a crystalline solid and characterized by X-ray crystallography.  相似文献   

20.
Five new thioantimonates have been synthesized in the presence of organic amines under solvothermal conditions and their structures determined by single-crystal X-ray diffraction. All of the compounds are layered and contain antimony-sulphide anions of stoichiometry [Sb4S7]2−, but the structure of the anion formed is dependent on the amine used in synthesis. (H3N(CH2)4NH3)[Sb4S7] (1) contains [Sb4S7]2− double chains directed along [010]. Weak interchain Sb-S interactions between neighbouring chains cause the double chains to pack into layers in the ab plane. In the [001] direction, the layers of double chains alternate with doubly protonated diaminobutane molecules to which the chains are hydrogen bonded. Compounds of general formula (TH)2[Sb4S7] (T=CH3(CH2)2NH2(2), (CH3)2CHNH2(3), CH3(CH2)3NH2(4) and CH3(CH2)4NH2(5)) adopt a more complex structure in which [Sb3S8]7− units are linked by SbS33− pyramids to form chains, which in turn are bridged by sulphur atoms to create sheets containing large heterorings. Pairs of such sheets form double layers of four atoms thickness that are stacked along [001]. Protonated amine molecules are located between anionic antimony-sulphide layers to which they are hydrogen bonded. Thermal analysis reveals that the decomposition temperature of materials containing [Sb4S7]2− anions is dependent both on the structure of the anion, the lowest decomposition temperature being that of the low-dimensional phase (1) and on the identity of the amine, the decomposition temperature decreasing with an increasing number of carbon atoms and decreasing density.  相似文献   

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